All Free Physics MCQs with Answers

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396 questions · page 15 of 40

141. The relationship between uniform electric field intensity E and potential difference V across a separation d is

  • A. E equals V times d
  • B. E equals V divided by d
  • C. E equals d divided by V
  • D. E equals V plus d

Explanation: For a uniform field, such as that between parallel plates, the intensity is the potential gradient, so a 100 V supply across plates 2 mm apart gives a field of 50,000 V per metre. This is why the unit volt per metre is equivalent to newton per coulomb. In a non uniform field the same relationship holds only as a local rate of change.

Correct answer: E equals V divided by d

142. Two protons are brought closer together. The electrostatic potential energy of the pair

  • A. increases, because work must be done against their repulsion
  • B. decreases
  • C. stays constant
  • D. becomes negative

Explanation: Like charges repel, so pushing them together requires work and that work is stored as potential energy, which is why the system flies apart if released. For unlike charges the energy is negative and becomes more negative as they approach, since the force does the work instead. The sign convention takes zero energy to be infinite separation.

Correct answer: increases, because work must be done against their repulsion

143. An electric dipole placed in a uniform electric field experiences

  • A. a net force but no torque
  • B. a torque but no net force
  • C. neither force nor torque
  • D. both a large net force and a torque

Explanation: The equal and opposite charges feel equal and opposite forces in a uniform field, so the forces cancel, but because they act along different lines they form a couple that turns the dipole into alignment with the field. In a non uniform field the two forces differ in size and a net force does appear. This turning effect is how polar molecules align in a dielectric.

Correct answer: a torque but no net force

144. Two bodies are in thermal equilibrium when

  • A. they have the same mass
  • B. they are at the same temperature, so there is no net flow of heat between them
  • C. they contain the same amount of heat
  • D. they are made of the same material

Explanation: Temperature is what decides the direction of heat flow, so equal temperatures mean no net transfer even if the two bodies hold very different amounts of internal energy. A cup of tea and a swimming pool at the same temperature are in equilibrium despite the pool storing far more energy. This is the content of the zeroth law, which is what makes a thermometer possible.

Correct answer: they are at the same temperature, so there is no net flow of heat between them

145. Heat is best described as

  • A. the total energy contained in a body
  • B. the temperature of a body
  • C. energy in transit from a hotter body to a cooler one because of the temperature difference
  • D. a fluid that flows between bodies

Explanation: Heat is a process word: it names energy while it is being transferred, which is why a body is said to contain internal energy rather than to contain heat. Temperature measures the average kinetic energy of the particles and decides which way the transfer goes. The old caloric fluid picture was abandoned once friction was shown to generate heat without limit.

Correct answer: energy in transit from a hotter body to a cooler one because of the temperature difference

146. The first law of thermodynamics states that the heat supplied to a system equals

  • A. the work done by the system alone
  • B. the increase in internal energy plus the work done by the system
  • C. the fall in internal energy
  • D. the temperature rise multiplied by the mass

Explanation: The law is conservation of energy applied to heat: energy entering as heat either raises the internal energy or leaves again as work done on the surroundings. Sign conventions matter, since heat supplied to the system and work done by the system are both counted as positive. A machine that produced work with no energy input would violate this law.

Correct answer: the increase in internal energy plus the work done by the system

147. In an isothermal expansion of an ideal gas

  • A. the internal energy falls
  • B. no heat is exchanged
  • C. the temperature and therefore the internal energy stay constant, so the heat supplied equals the work done
  • D. the work done is zero

Explanation: Constant temperature means constant internal energy for an ideal gas, so by the first law every joule of heat entering leaves again as work done pushing back the surroundings. The process must be slow and the container a good conductor for the temperature to be held fixed. A process with no heat exchange at all is adiabatic, not isothermal.

Correct answer: the temperature and therefore the internal energy stay constant, so the heat supplied equals the work done

148. In an adiabatic compression of a gas

  • A. the temperature of the gas rises because work is done on it with no heat escaping
  • B. the temperature falls
  • C. the temperature stays constant
  • D. heat flows into the gas from outside

Explanation: With no heat exchange, the work done on the gas must all go into internal energy, so the temperature rises, which is why a bicycle pump warms up when used quickly. Rapid compression is effectively adiabatic because there is no time for heat to escape. The reverse, adiabatic expansion, cools a gas, and that is how clouds form as air rises.

Correct answer: the temperature of the gas rises because work is done on it with no heat escaping

149. For a gas, the molar specific heat at constant pressure Cp is greater than that at constant volume Cv because

  • A. the gas is hotter at constant pressure
  • B. at constant pressure the gas also does work expanding against the surroundings
  • C. the molecules move faster at constant pressure
  • D. Cv is measured at a lower temperature

Explanation: At constant volume all the heat supplied raises the internal energy, but at constant pressure some of it is spent doing work as the gas expands, so more heat is needed for the same temperature rise. The difference is exactly the gas constant R, which is Mayer's relation. This is why Cp always exceeds Cv for any gas.

Correct answer: at constant pressure the gas also does work expanding against the surroundings

150. The relation between the two molar specific heats of an ideal gas is

  • A. Cp minus Cv equals R
  • B. Cp plus Cv equals R
  • C. Cp times Cv equals R
  • D. Cp equals Cv

Explanation: Mayer's relation follows directly from the first law applied to a constant pressure heating, where the extra heat needed is the work of expansion, which for one mole and a one kelvin rise is R. The ratio Cp over Cv, written gamma, is about 1.67 for a monatomic gas and 1.4 for a diatomic one. Gamma governs the speed of sound and adiabatic changes.

Correct answer: Cp minus Cv equals R